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Two-Dimensional Metallic Niobium Diselenide for Sub-micrometer-Thin Antennas in Wireless Communication Systems

Authors
Gund, Girish SambhajiJung, Min GyuShin, Keun-YoungPark, Ho Seok
Issue Date
Dec-2019
Publisher
AMER CHEMICAL SOC
Keywords
2D metallic nanomaterials; niobium diselenide; wearable electronics; antenna; thin film
Citation
ACS NANO, v.13, no.12, pp.14114 - 14121
Journal Title
ACS NANO
Volume
13
Number
12
Start Page
14114
End Page
14121
URI
http://scholarworks.bwise.kr/ssu/handle/2018.sw.ssu/39954
DOI
10.1021/acsnano.9b06732
ISSN
1936-0851
Abstract
The state-of-the-art of the Internet of things (IoT) and smart electronics demands advances in thin and flexible radio frequency (RF) antennas for wireless communication systems. So far, nanostructured materials such as metals, carbon nanotubes, graphene, MXene, and conducting polymers have been investigated due to their noteworthy electrical conductivity. However, most antennas based on metallic materials are thick, which limits their application in miniaturized and portable electronic devices. Herein, we report two-dimensional (2D) metallic niobium diselenide (NbSe2) for a monopole patch RF antenna, which functions effectively despite its sub -micrometer thickness, which is less than the skin depths of other metals. The as-fabricated antenna has an 855 nm thickness and a 1.2 Omega sq(-1) sheet resistance and achieves a reflection coefficient -46.5 dB, a radiation efficiency of 70.6%, and omnidirectional RF propagation. Additionally, the resonance frequency of this antenna at the same thickness is reconfigured from 2.01 to 2.80 GHz, while decreasing its length and preserving its reflection coefficient of less than -10 dB. This approach offers a facile process to synthesize 2D metallic transition metal dichalcogenides for the rational design of flexible, miniaturized, frequency-tunable, and omnidirectional monopole patch RF antennas for body-centric wearable communication systems.
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